US5812081A - Time domain radio transmission system - Google Patents
Time domain radio transmission system Download PDFInfo
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- US5812081A US5812081A US08/480,448 US48044895A US5812081A US 5812081 A US5812081 A US 5812081A US 48044895 A US48044895 A US 48044895A US 5812081 A US5812081 A US 5812081A
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/7163—Spread spectrum techniques using impulse radio
- H04B1/71637—Receiver aspects
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q21/00—Antenna arrays or systems
- H01Q21/06—Arrays of individually energised antenna units similarly polarised and spaced apart
- H01Q21/061—Two dimensional planar arrays
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q9/00—Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
- H01Q9/04—Resonant antennas
- H01Q9/16—Resonant antennas with feed intermediate between the extremities of the antenna, e.g. centre-fed dipole
- H01Q9/28—Conical, cylindrical, cage, strip, gauze, or like elements having an extended radiating surface; Elements comprising two conical surfaces having collinear axes and adjacent apices and fed by two-conductor transmission lines
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B14/00—Transmission systems not characterised by the medium used for transmission
- H04B14/02—Transmission systems not characterised by the medium used for transmission characterised by the use of pulse modulation
- H04B14/026—Transmission systems not characterised by the medium used for transmission characterised by the use of pulse modulation using pulse time characteristics modulation, e.g. width, position, interval
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/10—Frequency-modulated carrier systems, i.e. using frequency-shift keying
- H04L27/103—Chirp modulation
Definitions
- This invention relates generally to radio systems wherein time-spaced, essentially monocycle-like signals are created from DC pulses and transmitted into space wherein the resulting energy bursts are dispersed in terms of frequency to where the spectral density essentially merges with ambient noise, and yet information relating to these bursts is recoverable.
- Radio transmissions have heretofore been largely approached from the point of view of frequency channelling.
- coexistent orderly radio transmissions are permissible by means of assignment of different frequencies or frequency channels to different users, particularly as within the same geographic area.
- Essentially foreign to this concept is that of tolerating transmissions which are not frequency limited. While it would seem that the very notion of not limiting frequency response would create havoc with existing frequency denominated services, it has been previously suggested that such is not necessarily true, and that, at least theoretically, it is possible to have overlapping use of the radio spectrum.
- One suggested mode is that provided wherein very short (on the order of one nanosecond or less) radio pulses are applied to a broadband antenna which ideally would respond by transmitting short burst signals, typically comprising three or four polarity lobes, which comprise, energywise, signal energy over essentially the upper portion (above 100 megacycles) of the most frequently used radio frequency spectrum, that is, up to the mid-gigahertz region.
- short burst signals typically comprising three or four polarity lobes, which comprise, energywise, signal energy over essentially the upper portion (above 100 megacycles) of the most frequently used radio frequency spectrum, that is, up to the mid-gigahertz region.
- a second problem which has plagued advocates of the employment of impulse or time domain technology for radio is that of effectively receiving and detecting the presence of the wide spectrum that a monocycle burst produces, particularly in the presence of high levels of existing ambient radiation, presently nearly everywhere.
- a necessary antenna would essentially evenly reproduce the spectrum transmitted, and the receiver it feeds would have special properties which enable it to be utilized despite the typically high noise level with which it must compete.
- the state of the art prior to applicant's entrance generally involved the employment of brute force detection, i.e., that of threshold or time threshold gate detection. Threshold detection simply enables passage of signals higher than a selected threshold level.
- an object of this invention to provide an impulse or time domain (or baseband) transmission system which attacks all of the above problems and to provide a complete impulse time domain transmission system which, in applicant's view, eliminates the known practical barriers to its employment, and, importantly, its employment for all important electromagnetic modes of radio, including communications, telemetry, navigation and radar.
- a truly pulse-responsive antenna which translated an applied DC impulse into essentially a monocycle. It is a dipole which is completely the reverse of the conventional bat wing antenna and wherein two triangular elements of the dipole are positioned with their bases closely adjacent but DC isolated. They are driven at near adjacent points on the bases bisected by a line between apexes of the two triangular elements. This bisecting line may mark a side or height dimension of the two triangular elements.
- a transmitter switch which is formed by a normally insulating crystalline structure, such as diamond material sandwiched between two metallic electrodes, which are then closely coupled to the elements of the antenna. This material is switched to a conductive, or less resistive, state by exciting it with an appropriate wavelength beam of light, ultraviolet in the case of diamond.
- a like receiving antenna is typically employed to that used for transmission as described above.
- a locally generated, coordinately timed signal to that of the transmitted signal, is either detected from the received signal, as in communications or telemetry, or received directly from the transmitter, as, for example, in the case of radar.
- the coordinately timed signal typically including a basic half cycle, or a few, up to 10 half cycles, of signal, is mixed or multiplied by a factor of 1 (as with sampling or gating of the received signals), or ideally, as where the coordinately locally generated signal is curved, the factor is greater than one, giving rise to amplification in the process of detection, a significant advantage.
- the modulation on a signal, or position of a target at a selected range, as the case may be, is determined.
- Such a detection is further effected by an integration of the detected signal, with enhanced detection being accomplished by both a short term and long term integration.
- individual pulse signals are integrated only during their existence to accomplish short term integration, and following this, the resultant short term integration signals are long term integrated by integrating a selected number of these and particularly by a method which omits the noise signal content which occurs between individual pulse signals, thereby effecting a very significant increase in signal-to-noise ratio.
- transmitted burst signals may be varied in time pattern (in addition to a modulation pattern for communications or telemetry). This greatly increases the security of the system and differentiates signals from nearly, if not all, ambient signals, that is, ambient signals which are not synchronous with transmitted burst signals. This also enables the employment of faster repetition rates with radar which would, absent such varying or dithering, create range ambiguities as between returns from successive transmission and therefore ranges.
- Burst signals are signals generated when a stepped, or near stepped, voltage change is applied to an impulse-responsive antenna as illustrated and discussed herein.
- the repetition rate of burst signals may be quite large, say, for example, up to 100 mHz, or higher, this enabling a very wide frequency dispersion; and thus for a given overall power level, the energy at any one frequency would be extremely small, thus effectively eliminating the problem of interference with existing radio frequency based services.
- moving targets are detected in terms of their velocity by means of the employment of a bandpass filter, following mixing and double integration of signals.
- two channels of reception are ideally employed wherein the incoming signal is multiplied by a selected range, or timed, locally generated signal in one channel, and mixing the same incoming signal by a slightly delayed, locally generated signal in another channel, delay being on the order of one-quarter to one-half the time of a monocycle. This accomplishes target differentiation without employing a separate series of transmissions.
- radiators or receptors would be employed in an array wherein their combined effect would be in terms of like or varied-in-time of sensed (or transmitted) output, to thereby accent either a path normal to the face of the antenna or to effect a steered path offset to a normal path accomplished by selected signal delay paths.
- radio antenna elements would be positioned in front of a reflector wherein the distance between the elements and reflector is in terms of the time of transmission from an element or elements to reflector and back to element(s), typically up to about three inches, this being with tip-to-tip dimension of elements of somewhat below nine inches up to approximately nine inches.
- FIG. 1 is a combination block-schematic diagram of an intelligence time domain transmission system.
- FIG. 1a is a schematic diagram of an alternate form of the output stage of the transmitter shown in FIG. 1.
- FIG. 2 is a block diagram of a time domain receiver as contemplated by this invention.
- FIG. 3 is a set of electrical waveforms labeled FIG. 3A-FIG. 3L illustrative of aspects of the circuitry shown in FIGS. 1 and 1a.
- FIG. 4T1, FIG. 4T2, FIG. 4Ta and FIG. 4 Ea is a set of electrical waveforms illustrating aspects of operation of the circuitry shown in FIG. 2.
- FIG. 5 is an electrical block diagram illustrative of a basic radar system constructed in accordance with this invention.
- FIGS. 6, 6a, and 7 illustrate the configuration of an antenna in accordance with the invention.
- FIG. 8a and FIG. 8b show side and front views, respectively, of an alternate form of antenna constructed in accordance with this invention.
- FIG. 9a and FIG. 9b diagrammatically show side and front views, respectively, of another alternate embodiment of an antenna array.
- FIGS. 10-15 illustrate different switching assemblies as employed in the charging and discharging of antennas to effect signal transmission.
- FIG. 16 illustrates a radar system particularly for employment in facility surveillance
- FIG. 17 illustrates a modification of this radar system.
- FIGS. 18, 18a and 19 illustrate the general arrangement of transmission and receiving antennas for three-dimensional location of targets.
- FIG. 20 is a schematic illustration of a modified portion of FIG. 1 illustrating transmission and reception of time domain type sonic signals.
- FIG. 21 is a schematic illustration of an alternate portion of FIG. 1 illustrating both the employment of like time domain signals and a like modulation system adapted to produce broadband modulated light signals from the output of a conventional narrow band laser.
- FIG. 22 is an illustration of an optical frequency modulator.
- FIG. 23 is an illustration of an optical frequency demodulator.
- a base frequency of 100 kHz is generated by oscillator 12, typically being a crystal controlled oscillator. Its output, a pulse signal, is applied to ⁇ 4 divider 14 to provide at its output a 25-kHz (0 to 5 volts) pulse signal shown in waveform A of FIG. 3. Further alphabetic references to waveforms will simply identify them by their letter identity and will not further refer to the figure, which will be FIG. 3.
- the 25-kHz output is employed as a general transmission signal.
- Pulse position modulator 22 includes in its input an RC circuit consisting of resistor 24 and capacitor 26 which convert the square wave input to an approximately triangular wave as shown in waveform B, it being applied across resistor 25 to the non-inverting input of comparator 28.
- a selected or reference positive voltage, filtered by capacitor 27, is also applied to the non-inverting input of comparator 28, it being supplied from +5-volt terminal 31 of DC bias supply 30 through resistor 32. Accordingly, for example, there would actually appear at the non-inverting input a triangular wave biased upward positively as illustrated by waveform C.
- comparator 28 The actual conduction level of comparator 28 is determined by an input signal supplied through capacitor 36, across resistor 37, to the inverting input of comparator 28, as biased from supply 30 through resistor 38 and across resistor 32.
- the combined signal input bias is illustrated in waveform D.
- signal input would be simply the audio output of microphone 34, amplified, if needed, by amplifier 35.
- the signal input to comparator 28 would be the sum of the audio output and a signal offset or dither voltage, for example, provided by the output of signal generator 33, these signals being summed across resistor 41.
- Signal generator 33 may, for example, provide a sine, binary, or other signal, and, as illustrated, it is labeled as providing a "binary sequence A.” Thus, generator 33 would provide a binary signal voltage as a sequence of discrete voltage pulses varying between zero voltage and some discrete voltage, which may be representative of letters or numerical values or simply a random valve. Thus, the input to comparator 28 would be the sum of these voltages, and by virtue of this combination, the output of comparator 28 would rise to a positive saturation level when triangular wave signal 40 (waveform E) is of a higher value than the effective modulation signal 42 and drop to a negative saturation level when modulation signal 42 is of a greater value than the triangular wave signal 40.
- wave signal 40 waveform E
- the output signal of comparator 28 is shown in waveform F, and the effect is to vary the turn-on and turn-off of the pulses shown in this waveform as a function of the combination of the intelligence and dither signals where one is employed.
- the dither signal enables an added discrete pattern of time positions to be included with a transmitted signal, thus requiring that to receive and demodulator it, the dither signal must be accurately reproduced.
- FIG. 1 also shows alternate arrangements for converting the analog voltage derived from microphone 34 to binary form or the employment of a general digital source, such as a computer, and whereby the output of comparator 28 would be governed by one of such sources. Accordingly, with switch 39 closed, and providing a dither voltage, it would be combined with one of two other intelligence sources, either a digitally encoded voice signal or a digital signal from some independent digital source. Thus, in one instance, switch 39a would be open and switches 39 and 39c closed, with switch 39b positioned to provide the signal from amplifier 35 to A/D converter 34a.
- the microphone signal from amplifier 35 would be fed to A-D converter 34a, and the resulting digitized output, being in parallel, would be fed to parallel-to-serial converter 34b wherein its output would be a serial digital binary output which would be fed to comparator 28 as the sum of the dithered voltage and binary output of parallel-to-serial converter 34b.
- the input to comparator 28 would be the sum of the dithered and digital source voltage.
- the digital source voltage is provided by digital source 29, and assuming that it is in parallel form, it would be converted to a serial form by parallel-to-serial converter 29a, and then with switch 39a closed, it would be provided along with the dithered output of generator 33 as an intelligence input to the inverting input of comparator 28.
- the output of comparator 28 would be the algebraic sum of the voltages applied to comparator 28 as previously described.
- the output of mono 46 is applied through diode 48 across resistor 50 to the base input of NPN transistor 52 operated as a triggering amplifier. It is conventionally biased through resistor 54, e.g, 1.5K ohms, from +5-volt terminal 31 of 5-volt power supply 30 to its collector. Capacitor 56, having an approximate capacitance of 01 mf, is connected between the collector and ground of transistor 52 to enable full bias potential to appear across the transistor for its brief turn-on interval, 50 nanoseconds. The output of transistor 52 is coupled between its emitter and ground to the primary 58 of trigger transformer 60. Additionally, transistor 52 may drive transformer 60 via an avalanche transistor connected in a common emitter configuration via a collector load resistor.
- an avalanche mode operated transistor In order to drive transformer 60 with a steep wave front, an avalanche mode operated transistor is ideal.
- Identical secondary windings 62 and 64 of trigger transformer 60 separately supply base-emitter inputs of NPN avalanche, or avalanche mode operated, transistors 66 and 68 of power output stage 18. Although two are shown, one or more than two may be employed when appropriately coupled.
- avalanche mode operated transistors 66 and 68 it has been found that such mode is possible from a number of types of transistors not otherwise labeled as providing it, such as a 2N2222, particularly those with a metal can.
- the avalanche mode referred to is sometimes referred to as a second breakdown mode, and when transistors are operated in this mode and are triggered "on," their resistance rapidly goes quite low (internally at near the speed of light), and they will stay at this state until collector current drops sufficiently to cut off conduction (at a few microamperes).
- Certain other transistors, such as a type 2N4401 also display reliable avalanche characteristics.
- impulse antenna 200 is charged by a DC source 65 through resistors 67 and 69 to an overall voltage which is the sum of the avalanche voltage of transistors 66 and 68 as discussed above.
- Resistors 67 and 69 together have a resistance value which will enable transistors 66 and 68 to be biased as described above.
- Resistors 71 and 73 are of relatively low value and are adjusted to receive energy below the frequency of cut-off of the antenna.
- transistors 66 and 68 are turned "on," effectively shorting, through resistors 71 and 73, antenna elements 204 and 206. This action occurs extremely fast, with the result that a signal is generated generally as shown in pulse waveform G (but somewhat rounded).
- Antenna 200 differentiates the pulse G to transmit essentially a monocycle of the general shape shown in waveform H.
- FIG. 1a illustrates an alternate embodiment of a transmitter output stage. It varies significantly from the one shown in FIG. 1 in that it employs a light-responsive avalanche transistor 63, e.g., a 2N3033. Similar components are designated with like numerical designations to that shown in FIG. 1, but with the suffix "a" added.
- Transistor 63 is triggered by laser diode or fast turn-on LED (light emitting diode) 61, in turn driven by avalanche transistor 52 a generally operated as shown in FIG. 1.
- a light-activated avalanche or other avalanche mode operated semiconductor switches (now existing or soon appearing), or a series of them connected in series, it appears that the voltage for power source 65a may be elevated into the multi-kilovolt range, thus enabling a power output essentially as high as desired.
- a light-triggered, gallium arsenide, avalanche mode operated switch would be employed.
- the output of monocycle producing antenna 200 is typically transmitted over a discrete space and would typically be received by a like broadband antenna, e.g., antenna 200 of a receiver at a second location (FIG. 2).
- FIG. 2 illustrates a radio receiver which is particularly adapted to receive and detect a time domain transmitted signal.
- a radio receiver which is particularly adapted to receive and detect a time domain transmitted signal.
- it particularly illustrates a system for detecting intelligence which has been mixed with a particular offset or dither signal, analog or digital, such as provided by binary sequence "A" generator 33 shown in FIG. 1.
- binary sequence "A" generator 33 shown in FIG. 1.
- switch 39 of FIG. 1 is closed and that the signal transmitted by transmitter 10 is one wherein intelligence signals from microphone 34 are summed with the output of binary sequence "A" generator 33, and thus that the pulse position output of transmitter 10 is one wherein pulse position is a function of both intelligence and offset or dither signals.
- the transmitted signal may be described as a pulse position modulated signal subjected to changes in pulse position as effected by a time offset pattern of the binary sequence "A.”
- the transmitted signal from transmitter 10 is received by antenna 200 (FIG. 2), and this signal is fed to two basic circuits, demodulation circuit 222 and template generator 234.
- a replica of the transmitted signal, waveform H (FIG. 3) is employed to effect detection of the received signal, basic detection being accomplished in multiplier or multiplying mixer 226.
- the template signal reproduced as waveform FIG. 4 T 1 in FIG. 4, must be applied to mixer 226 closely in phase with the input, as will be further described.
- further references to the waveforms of FIG. 4 will not refer to the figure designation gut will instead refer to the alphabetic designation of the waveforms. It will differ by a magnitude not perceptible in the waveforms of FIG.
- template generator 234 employs a crystal controlled but voltage controlled oscillator 227 which is operated by a control voltage which synchronizes its operation in terms of the received signal.
- Oscillator 227 operates at a frequency which is substantially higher than the repetition rate of transmitter 10, and its output is divided down to the operating frequency of 25 kHz by frequency divider 230, thus equal to the output of divider 14 of transmitter 10.
- a like generator 228 provides a binary changing voltage to programmable delay circuit 232 which applies to the signal output of divider 230 a delay pattern corresponding to the one effected by binary sequence "A” generator 33 of FIG. 1 when added to intelligence modulation.
- this might be four 8-bit binary words standing for the numerals 4, 2, 6, and 8, the same pattern having been generated by binary sequence "A” generator 33 and transmitted by transmitter 10. It is further assumed that this is a repeating binary pattern.
- programmable delay 232 will first delay a pulse it receives from divider 230 by four units.
- Either programmable delay 232 or a second delay device connected to its output would additionally provide a general circuit delay to take care of circuit delays which are inherent in the related circuitry with which it is operated, as will be described.
- the delayed output of delay 232 which is a composite of these, will be provided to the input of template generator 234, and it is adapted to generate a replica of the transmitted signal, illustrated in FIG. 4.
- Differential amplifier 246 basically functions to provide a DC voltage as needed to apply a correction or error signal to oscillator 227 as will enable there to be provided to mixer 226 replica signal T 1 exactly in phase with the average time of input signal E a .
- the input signal E a is multiplied by two spaced, in time, replicas of the template signal output of template generator 234.
- the first of these, indicated as T 1 is multiplied in mixer 236 by input signal E a in mixer 238.
- T 2 is delayed from signal T 1 by delay 240 by a period of essentially one-half of the duration of the major lobe P of template signal T 1 .
- the output of mixer 236 is integrated in integrator 242, and its output is sampled and held by sample and hold unit 244 as triggered by delay 232.
- the output of sample and hold unit 244, the integral of the product of the input signal E a and T 1 , is applied to the non-inverting input of differential amplifier 246.
- the output of mixer 238 is integrated by integrator 249 and sampled and held by sample and hold 250 as triggered by delay 232, and the integrated product of the input signal E a and template signal T 2 is applied to the inverting input of differential amplifier 246.
- differential amplifier 246 To examine the operation of differential amplifier 246, it will be noted that if the phase of the output of oscillator 227 should advance, signals T 1 and E a applied to mixer 236 would become closer in phase, and their product would increase, resulting in an increase in input signal to the non-inverting input of differential amplifier 246, whereas the advance effect on template signal T 2 relative to the input signal E a would be such that their coincidence would decrease, causing a decrease in the product output of mixer 238 and therefore a decreased voltage input to the inverting input of differential amplifier 246. As a result, the output of differential amplifier 246 would be driven in a positive direction, and this polarity signal would be such as to cause oscillator 227 to retard.
- the result would be such that higher voltages would be applied to the inverting input than to the non-inverting input of differential amplifier 246, causing the output signal to decrease and to drive oscillator 227 in an opposite direction.
- the near average phase lock is effected between the input signal E a and template signal T a which is directly employed in the modulation of the input signal.
- the term "near” is used in that the output of differential amplifier 246 is passed through low pass filter 253 before being applied to the control input of oscillator 227.
- the cut-off frequency of low pass filter 253 is set such that it will take a fairly large number of pulses to effect phase shift (e.g., 10 Hz to perhaps down to 0.001 Hz).
- the response of oscillator 227 is such that it provides an output which causes waveform T 1 and thus waveform T a to be non-variable in position with respect to modulation effect.
- the output T 1 of template generator 234 is delayed by a period equal to essentially one-fourth the period P of the major lobe of the template and input signal, and this is applied as signal T a with the input signal E a to multiplying mixer 226.
- the resulting delayed signal, T a is now near synchronization with the input signal E a , and thus the output of multiplier 226 provides essentially a maximum signal output.
- the signal output of mixer 226 is integrated in integrator 251, and the output signal is multiplied by a factor of 0.5 by amplifier 252. Then this one-half voltage output of amplifier 252 is applied to the inverting input of comparator 254, and this voltage represents one-half of the peak output of integrator 250.
- a second output of integrator 251 is fed through delay 256 to the non-inverting input of comparator 254, delay being such as required for stabilization of the operation of amplifier 252 and comparator 254 in order to obtain an effective comparison signal level that will be essentially free of the variable operation of these two units.
- the output of comparator 254 represents an essentially precise time marker which varies with the position of input signal E a .
- flip-flop 258 It is then fed to the reset input of flip-flop 258, a set input being provided from the output of delay 232 which represents, because of low pass filter 253, an averaged spacing between input signals, thus providing a reference against which the modulation controlled time variable output signal of comparator 254 may be related. It is related by virtue of the output of delay 232 being provided as the set input of flip-flop 258. Thus, for example, the output of flip-flop 258 would rise at a consistent time related to the average repetition rate as essentially dictated by low pass filter 253. Thus, the output of flip-flop 258 would be brought back to zero at a time which reflected the intelligence modulation on the input signal.
- switch A is moved to the lower position wherein the output of comparator 261a and the thus parallel in form digital signal is fed to the non-inverting input of comparator 261a, a potential being applied to the inverting input sufficient to block the transition of comparator 261a from an off state to an on state absent a significant "1" binary signal.
- switch B will be positioned in the indicated position wherein the output of comparator 261a is fed to D-A converter 261b, and the thus derived analog signal is fed via switch C in the lower position to loudspeaker 262.
- switch B is switched from its shown position to its lower position, wherein the output of comparator 261a is fed via serial-to-parallel converter 261d to digital register 261c, such as another digital computer or a digital computer terminated by a monitor.
- digital register 261c such as another digital computer or a digital computer terminated by a monitor.
- FIG. 5 particularly illustrates a radar system of the present invention for determining range.
- Impulse-responsive, or impulse, antenna 200, or antenna 201 as shown in FIG. 6a, of transmitter 329 comprises triangular elements A and B with closely spaced bases.
- a dimension of a base and a dimension normal to the base of each element is approximately 41/2 inches and is further discussed and illustrated with respect to FIGS. 6 and 7.
- a reflector would be used as illustrated in FIGS. 8a and 8b.
- a base is reduced to 21/4 inches wherein the elements are halved as shown in FIG. 6a.
- the length of path from a feed point to an edge is the same in both cases.
- the transmitter is basically controlled by control 310. It includes a transmit sequence, or rate, control portion 312 which determines the timing of transmitted signal bursts, at, for example, 10,000 bursts per second, in which case transmit sequence control 312 generates an output at 10,000 Hz on lead 314.
- Oscillator 316 is operated at a higher rate, for example, 20 mHz.
- the signal output of transmit sequence control 312 is employed to select particular pulse outputs of oscillator 316 to be the actual pulse which is used as a master pulse for controlling both the output of transmitter 329 and the timing of receiver functions, as will be further described.
- the selection is one and some fraction of an oscillator pulse interval after an initial signal from control 312.
- the selection is made via a control sequence employing D-type flip-flops 318, 320, and 322.
- the transmit sequence control pulse on lead 314 is applied to the clock input of flip-flop 318. This causes the Q output of flip-flop 318 to transition to a high state, and this is applied to a D input of flip-flop 320.
- the output of oscillator 316 imposes a rising edge on the clock input of flip-flop 320.
- the high level of the D input of this flip-flop is transferred to the Q output.
- the Q output of flip-flop 320 is provided to the D input of flip-flop 322, and the next rising edge of the pulse from oscillator 316 will cause the not Q output of flip-flop 322 to go low and thus initiate the beginning of the transmit-receive cycle.
- the not Q output of flip-flop 322 is fed as an input to analog programmable delay 313 and to counter 315.
- Counter 315 for example, would respond to the not Q outputs of flip-flop 322 and count up to a selected number, for example, 356, and recycle to count again.
- Its binary output would be fed as an address to memory unit 317, ROM or RAM, which would have stored, either in numerical address order, or randomly selected order, a number.
- D/A converter unit 321 would then provide an analog signal output proportional to the input number.
- This output is employed to sequentially operate programmable delay unit 313 for delays of pulses from flip-flop 322 by an amount proportional to the signal from D/A converter 321.
- the range of delays would typically be up to the nominal timing between pulses, in this case, up to 300 nanoseconds, and practically up to 99 nanoseconds.
- the delayed output of programmable delay unit 313 is then fed to fixed delay unit 324, which provides a fixed delay of 200 nanoseconds to each pulse that it receives.
- the thus delayed pulses are then fed to trigger generator 323.
- Trigger generator 323, e.g., an avalanche mode operated transistor, would provide a sharply rising electrical output at the 10,000 Hz rate or a like response of light output, e.g., by laser, depending upon the transmitter to be driven.
- trigger generator 323 would be an ultraviolet laser.
- a pulse of trigger generator 323 is fed to and rapidly turns “on” a switch, for example, diamond 335, which, for example, may again be an electrically operated or light operated switch, such as a diamond switch in response to the ultraviolet laser triggering device via fiber optic 327.
- a switch for example, diamond 335, which, for example, may again be an electrically operated or light operated switch, such as a diamond switch in response to the ultraviolet laser triggering device via fiber optic 327.
- it must be capable of switching in a period of a nanosecond or less. It is then switched "on” to discharge antenna 200, having earlier been charged from power source B through resistors R 1 and R 2 , source B being, for example, 100 to 5,000 volts.
- Conformal impulse antenna 200 or 200a (FIG. 6a) is turned “on” or turned “off,” or successively both, by switch assembly 319 which applies stepped voltage changes to the antenna. It responds by transmitting essentially short burst signals each time that it is triggered. These burst signals are then transmitted into space via a directional version of antenna 200 as illustrated in FIGS. 8a, 8b and 9a, 9b or simply by an omni-directional antenna as shown by antenna 200 in FIG. 1 or 200a in FIG. 6a.
- Signal returns from a target would be received by receiver 326, typically located near or together with transmitter 329, via receiving antenna 200, which would, for example, be like a transmitting antenna.
- the received signals are amplified in amplifier 328 and fed to mixer 330, together with a signal from template generator 332, driven by delay line 336, which is timed to produce signals, typically half cycles in configuration, and corresponding in time to the anticipated time of arrival of a signal from a target at a selected range.
- Mixer 330 functions to multiply the two input signals, and where there are coincidence signals, timewise and with like or unlike polarity coincident signals, there is a significant and integratable output, indicating a target at the range.
- a mixer and the following circuitry may be reused for later arriving signals representative of different range, this range or time spacing being sufficient to complete processing time for reception and integration at a range as will be described. Additional like mixtures and following circuitry sets may be employed to fill in the range slots between that capable for one set.
- the goal here is to determine the presence or absence of a target based on a number of signal samplings as effected by integration, where a true target does not exist, the appearance of signals received by mixer 330 corresponding to the time of receipt of signals from template generator 234 will typically produce signals which vary not only in amplitude, but also in polarity. It is to be borne in mind that the present system determines intelligence, not instantaneously, but after a period of time, responsive to a preponderance of coherent signals over time, a facet of time domain transmission. Next, it is significant that the template generator produce a template signal burst which is no longer than the effecting signal to be received and bear a consistent like or opposite polarity relationship in time with it.
- the template signal is simply a one polarity burst signal. Assuming that it maintains the time relationship described, effective detection can be effected.
- template generator 332 is driven as a function of the timing of the transmitter.
- coarse delay counter 335 and fine delay programmable delay line 336 are employed.
- Down counter 335 counts down the number of pulse outputs from oscillator 316 which occur subsequent to a control input of lead 338, the output of programmable delay unit 313.
- a discrete number of pulses thereafter received from oscillator 316 is programmable in down counter 335 by an output X from load counter 341 on lead 340 of control 310, a conventional device wherein a binary count is generated in control 310 which is loaded into down counter 335.
- down counter 335 the number "7," which means it will count seven of the pulse outputs of oscillator 316, each being spaced at 50 nanoseconds. So there is achieved a 350-nanosecond delay in down counter 335, but subtracting 200 nanoseconds as injected by delay unit 324, we will have really an output of down counter 335 occurring 150 nanoseconds after the transmission of a burst by transmitting antenna 200 or 200a.
- programmable delay line 336 In order to obtain the precise timing of 175 nanoseconds, an additional delay is effected by programmable delay line 336, which is triggered by the output of down counter 335 when its seven count is concluded. It is programmed in a conventional manner by load delay 342 of control 310 of lead Y and, thus in the example described, would have programmed programmable delay line 336 to delay an input pulse provided to it by 25 nanoseconds. In this manner, programmable delay line 336 provides a pulse output to template generator 332, 175 nanosecond after it is transmitted by transmitting antenna 200. Template generator 332 is thus timed to provide, for example, a positive half cycle or square wave pulse to mixer 330 or a discrete sequence or pattern of positive and negative excursions.
- analog integrator 350 Assuming that there is a discrete net polarity likeness or unlikeness between the template signal and received signal during the timed presence of the template signal, analog integrator 350, which effectively integrates over the period of template signal, will provide a discrete voltage output. If the signal received is not biased with a target signal imposed on it, it will generally comprise as much positive content as negative content on a time basis; and thus when multiplied with the template signal, the product will follow this characteristic, and likewise, at the output of integrator 350, there will be as many discrete products which are positive as negative.
- analog integrator 350 there will be a bias in one direction or the other, that is, there will be more signal outputs of analog integrator 350 that are of one polarity than another.
- the signal output of analog integrator 350 is amplified in amplifier 352, and then, synchronously with the multiplication process, discrete signals emanating from analog integrator 350 are discretely sampled and held by sample and hold 354. These samples are then fed to A/D converter 356 which digitizes each sample, effecting this after a fixed delay of 40 nanoseconds provided by delay unit 358, which takes into account the processing time required by sample and hold unit 354.
- the now discrete, digitally calibrated positive and negative signal values are fed from A/D converter 356 to digital integrator 362, which then digitally sums them to determine whether or not there is a significant net voltage of one polarity or another, indicating, if such is the case, that a target is present at a selected range.
- digital integrator 362 digitally sums them to determine whether or not there is a significant net voltage of one polarity or another, indicating, if such is the case, that a target is present at a selected range.
- a number of transmissions would be effected in sequence, for example, 10, 100, or even 1,000 transmissions, wherein the same signal transmit time of reception would be observed, and any signals occurring during like transmissions would then be integrated in digital integrator 362, and in this way enable recovery of signals from ambient, non-synchronized signals which, because of random polarities, do not effectively integrate.
- the output of digital integrator 362 would be displayed on display 364, synchronized in time by an appropriate signal from delay line 336 (and delay 358) which would thus enable the time or distance position of a signal return to be displayed in terms of distance from the radar unit.
- FIGS. 6 and 7 illustrate side and front views of an antenna 200.
- antenna elements A and B are triangular with closely adjacent bases, and switch 335 connects close to the bases of the elements as shown.
- switch 335 connects close to the bases of the elements as shown.
- the antenna may be, as in all cases, like that shown in FIG. 6a where antenna 200a is sliced in half to have a base dimension of 21/4 inches.
- Either of the antennas illustrated in FIG. 6, 8, or 6a may be employed as antennas in any of the figures.
- FIGS. 8a and 8b diagrammatically illustrate an antenna assembly wherein a multiple, in this case, 12, separate antenna element sets, for example, as antenna 200, are employed, each being spaced forward of a metal reflector 200R by a distance of approximately 3 inches, for a nine-inch tip-to-tip antenna element dimension.
- the antennas are supported by insulating standoffs 200b, and switches 335 (transmitting mode) are shown to be fed by triggering sources 323 which conveniently can be on the back side of reflector 200R, and thus any stray radiation which might tend to flow back beyond this location to a transmission line is effectively shielded.
- the multiple antennas may be operated in unison, that is, all of them being triggered (in the case of a transmitter) and combined (in the case of a receiver) with like timing, in which case the antenna would have a view or path normal to the antenna array or surface of reflector as a whole.
- the timing by combination, or triggering devices would be varied.
- outputs of all of the antennas in a column might be combined at a like time point, outputs from other columns might be delayed before a final combination of all signals. Delays can simply be determined by lead lengths, and, in general, multiple effects are achievable in almost limitless combinations.
- antenna elements may be arranged in an end-fire format wherein each element is driven with or without a reflector. They may be arrayed as illustrated in FIGS. 9a and 9b wherein four end-fire unit Y 1 , Y 2 , Y 3 , and Y 4 are employed and positioned in front of a common reflector. Alternately, the reflector may be omitted, and further alternately, an absorber may be positioned behind the array to shock back waves.
- FIG. 10 diagrammatically illustrates a transmitting switch wherein the basic switching element is an avalanche mode operated transistor 400, the emitter and collector of which are connected through like resistors 402 to antenna elements A and B of antenna 200, the resistors being, for example, 25 ohms each (for an antenna as shown in FIG. 6a, it would be doubled).
- the basic switching element is an avalanche mode operated transistor 400, the emitter and collector of which are connected through like resistors 402 to antenna elements A and B of antenna 200, the resistors being, for example, 25 ohms each (for an antenna as shown in FIG. 6a, it would be doubled).
- a DC voltage e.g. 150 volts
- pulse transformer 408 The primary of pulse transformer 408 is supplied a triggering pulse, as from trigger circuit 323 of FIG. 5, and its secondary is connected between the base and emitter of transistor 400.
- the transmission line for the triggering pulse would be in the form of a coaxial cable 410.
- FIG. 11 illustrates a modified form of applying a charging voltage to antenna elements A and B, in this case, via constant current source, and wherein the charging voltage is supplied across capacitor 507 through coaxial cable 412, which also supplies a triggering voltage to transformer 408, connected as described above.
- the (+) voltage is supplied to the inner conductor of coaxial cable 412, typically from a remote location (not shown).
- This voltage is then coupled from the inner conductor of the coaxial cable through the secondary of pulse transformer 408 and resistor 414, e.g., having a value of 1K ohms, to the collector of a transistor 416 having the capability of standing the bias voltage being applied to switching transistor 400 (e.g., 150 volts).
- the (+) voltage is also applied through resistor 418, for example, having a value of 220K ohms, to the base of transistor 416.
- a control circuit to effect constant current control is formed by a Zener diode 420, across which is capacitor 422, this Zener diode setting a selected voltage across it, for example, 71/2 volts.
- This voltage is then applied through a variable resistor 424 to the emitter of transistor 416 to set a constant voltage between the base and emitter and thereby a constant current rate of flow through the emitter-collector circuit of transistor 416, and thus such to the antenna.
- it is set to effect a full voltage charge on antenna 200 in approximately 90% of the time between switch discharges by transistor 400.
- the thus regulated charging current is fed through resistors 406 to antenna elements A and B. In this case, discharge matching load resistors 402 are directly connected between transistor 400 and antenna elements A and B as shown.
- FIG. 12 illustrates the employment of a light responsive element as a switch, such as a light responsive avalanche transistor 423, alternately a bulk semiconductor device, or a bulk crystalline material such as diamond, would be employed as a switch, there being switching terminals across, on opposite sides of, the bulk material.
- the drive circuit would be similar to that shown in FIG. 10 except that instead of an electrical triggering system, a fiber optic 426 would provide a light input to the light responsive material, which would provide a fast change from high to low resistance between terminals to effect switching.
- FIG. 13 bears similarity to both FIGS. 11 and 12 in that it employs a constant current power source with light responsive switching element 423, such as a light responsive transistor, as shown. Since there is no coaxial cable for bringing in triggering signals, other means must be provided for bias voltage. In some applications, this may simply be a battery with a DC-to-DC converter to provide the desired high voltage source at (+) and (-) terminals.
- FIGS. 14 and 15 illustrate the employment of multiple switching elements, actually there being shown in each figure two avalanche mode operated transistors 450 and 452 connected collector-emitter in series with resistors 402 and antenna elements A and B.
- trigger transformer 454 separate transformer secondary windings of trigger transformer 454 are employed to separately trigger the avalanche mode transistors.
- the primary winding of a transformer would typically be fed via a coaxial cable as particularly illustrated in FIG. 10.
- Antenna elements A and B are charged between occurrences of discharge from (+) or (-) supply terminals, as shown.
- FIG. 15 additionally illustrates the employment of a constant current source as described for the embodiment shown in FIGS. 11 and 13.
- the system of feeding the constant current source through coaxial cable as shown in FIG. 11 can likewise be employed with the circuitry shown in FIG. 14.
- Transmitter 500 includes a 16-mHz clock signal which is generated by signal generator 501. This signal is then fed to ⁇ 16 divider 502 to provide output signals of 1 mHz. One of these 1-mHz outputs is fed to 8-bit counter 504 which counts up to 256 and repeats. The other 1-mHz output of ⁇ 16 divider 502 is fed through a programmable analog delay unit 506 wherein each pulse is delayed by an amount proportional to an applied analog control signal. Analog delay unit 506 is controlled by a magnitude of count from counter 504, which is converted to an analog voltage proportional to this count by D/A converter 509 and applied to a control input of analog delay unit 506.
- each of the 1-mHz pulses from ⁇ 16 divider 502 is delayed a discrete amount.
- the pulse is then fed to fixed delay unit 508 which, for example, delays each pulse by 60 nanoseconds in order to enable sufficient processing time of signal returns by receiver 510.
- the output of fixed delay unit 508 is fed to trigger generator 512, for example, an avalanche mode operated transistor, which provides a fast rise time pulse. Its output is applied to switch 514, typically an avalanche mode operated transistor as illustrated in FIG. 10 or 11.
- Antenna 200 (or 200a) is directly charged through resistors 503 from a capacitor 507 (FIG. 11) which generally holds a supply voltage provided at the (+) and (-) terminals.
- receiver 510 antenna 513, identical with antenna 200 or 200a, receives signal returns and supplies them to mixer 514.
- Mixer 514 multiplies the received signals from antenna 513 with locally generated ones from template generator 516.
- Template generator 516 is triggered via a delay chain circuitry of analog delay unit 506 and adjustable delay unit 518, which is set to achieve a generation of a template signal at a time corresponding to the sum of delays achieved by fixed delay 508 and elapsed time to and from a target at a selected distance.
- the output of mixer 514 is fed to short-term analog integrator 520 which discretely integrates for the period of each template signal.
- long-term integrator 522 which, for example, may be an active low pass filter and integrates over on the order of 50 milliseconds, or, in terms of signal transmissions, up to, for example, approximately 50,000 such transmissions.
- the output of integrator 522 is amplified in amplifier 524 and passed through adjustable high pass filter 526 to alarm 530.
- high pass filter 526 might be set to pass signals from targets at a greater velocity than 0.1 feet per second and integrator-low pass filter 522 adapted to pass signals representing targets moving less than 50 miles per hour. Assuming that the return signals pass both such filters, the visual alarm would be operated.
- FIG. 17 illustrates a modification of FIG. 16 for the front-end portion of receiver 510.
- there are two outputs of antenna 200 one to each of separate mixers 650 and 652, mixer 650 being fed directly an output from template generator 618, and mixer 652 being fed an output from template generator 618 which is delayed 0.5 nanosecond by 0.5 nanosecond delay unit 654.
- the outputs of mixers 650 and 652 are then separately integrated in short-term integrators 656 and 658, respectively. Thereafter, the output of each of these short-term integrators is fed to separate long-term integrators 660 and 662, after which their outputs are combined in differential amplifier 664.
- the output of differential amplifier 664 is then fed to high pass filter 526 and then to alarm 530, as discussed above with respect to FIG. 16. Alternately, a single long-term integrator may replace the two, being placed after differential amplifier 664.
- the present system may be positioned within a building and set to detect movement within a circular perimeter within the building through which an intruder must pass. The system would be insensitive to passersby just outside the building.
- Ranges can be in terms of a circular perimeter, or, as by the employment of a directional antenna (antenna 200 with a reflector) or yagi-type array, effect observations at a discrete arc.
- FIG. 18 illustrates an application of applicant's radar to a directional operation which might cover a circular area, for example, from 20 to 30 feet to several thousand feet in radius.
- a transmit antenna in this case, oriented vertically as a non-directional, or omni-directional, antenna 700.
- An antenna e.g., as previously described, is powered by a trigger switch transmitter 707. Assuming that a single signal burst is transmitted from transmit antenna 700, it would be radiated around 360° and into space.
- receivers 708, 710, and 711 would be supplied a template signal as described above to thus, in effect, cause the receivers to sample a signal echo being received at that precise instant. This process would be repeated for incrementally increasing or deceasing times, and thus there would be stored in the memory's units 712, 714, and 716 signals representative of a range of transit times. Then, by selection of a combination of transit times for each of the receivers, in terms of triangularizations, it is possible to select stored signals from the memory units representative of a particular location in space.
- the result of signals derived from one scan and a later occurring scan would be digitally subtracted, and thus there an object at some point within the range of the unit has moved to a new location, there will then be a difference in the scan information. This thus would signal that something may have entered the area.
- This process in general would be controlled by a read-write control 718 which would control the memory's units 712, 714, and 716 and would control a comparator 720 which would receive selected values X, Y, and Z from memory units 712, 714, and 716 to make the subtraction.
- Display 722 such as an oscilloscope, may be employed to display the relative position of an object change with respect to a radar location.
- FIG. 19 illustrates an application of applicant's invention to a radar system wherein there is one transmitting antenna, e.g., antenna 200, located in a discrete plane position with respect to the direction of observation, three receiving antennas spaced in a plane parallel to the first plane, and a fourth receiving antenna positioned in a third plane.
- transmitting antenna 200 responsive to transmitter or transmitter switch 802, which is reflected by a target, is received by the four receiving antennas at varying times by virtue of the difference in path length.
- Control 800 directs a transmission by a transmitter 802, which supplies a signal burst to transmitting antenna 200.
- Signal returns are received by antennas 806, 808, and 810 and are located, for example, in a plane generally normal to the direction of view and separate from the plane in which transmit antenna 200 is located.
- a fourth receiving antenna 812 is located in still a third plane which is normal to the direction of view and thus in a plane separate from the plane in which the other receiving antennas are located.
- FIG. 20 illustrates a portion of a radar system generally shown in FIG. 5 except that the pulse output of switch 335 is applied through an impedance matching device, i.e., resistor 900, to wideband sonic transducer 902.
- Sonic transducer 902 is a known structure, it being, for example, constructed of a thin piezoelectric film 904 on opposite sides of which are coated metallic films 906 and 908 as electrodes. The energizing pulse is applied across these plates. Impedance matching is typically required as switch 335 would typically supply a voltage from a relatively low impedance source whereas sonic transducer 902 typically would have a significantly higher impedance.
- the sonic output of sonic transducer 902 a wide frequency band, on the order of at least three octaves, would typically be attached to an impedance transformer for the type of medium into which the sonic signal is to be radiated; for example, transducer 902 would attach to a low impedance material 903, such as glass, in turn mounted on a support 905 (for example, the hull of a ship).
- An echo or reflection from a target of the signal transmitted by sonic transducer 902 would be received by a similarly configured sonic transducer 910, and its output would then be coupled via plates 912 and 914 to amplifier 328 and thence onto mixer 330 as illustrated in FIG. 5 wherein operation would be as previously described.
- FIG. 21 illustrates a broadband light transmitter.
- a pulse as from switch 335 triggers a conventional laser 922 operating, for example, in a conventional narrow frequency mode at approximately 700 nanometers to provide such an output to a narrow band to wideband light converter assembly consisting of light modulator 924 and a dispersive medium 926.
- the output of laser 922 is applied to one end 928 of a fiber optic 923 having a variable refractive index as a function of an applied voltage and, in this case, for example, having a thickness dimension on the order of 2 millimeters and a length dimension of approximately 1 meter.
- the fiber optic is positioned between two elongated metallic or otherwise conductive plates 930 and 932.
- a modulating voltage from signal generator 934 for example, a ramp voltage, is applied across the plates adjacent to the exiting end of fiber optic 923 and terminated by resistor 939 as a load and ground. Plate 932 is grounded at both ends to prevent destructive reflections.
- Generator 934 typically would be triggered also by switch 335 to create, in this example, a ramp voltage which would effect a traveling wave from right to left along the plates and thus along the enclosed fiber optic, opposing the traveling light pulse from left to right.
- a light output at end 936 which varies, changing from the initial wavelength of the input light pulse to a higher or lower frequency, and this, in effect, creates a chirp-type pulse. It is then supplied to a dispersive material 926 such as lead glass, with the result that at its output, the resultant light pulse is converted to a quite short duration pulse having a wide broadband spectrum of frequencies, or white or near white light output.
- Emitted beam 938 then travels outward, and upon striking a target, a reflection is reflected back to optical mixer 940 which is also supplied a laser output pulse from laser 942 (e.g., by a beam splitter), in turn triggered by a selectably variable delay line 942, being delayed in terms of selected range.
- optical mixer 940 multiplies the two input signals, a template signal and a received signal, and provides a multiplied output to integrator 950, and the signals are then processed as generally described with respect to FIG. 5.
- light modulator 924 a light frequency modulator
- FIG. 22 illustrates a modification of the transmitter shown in FIG. 20, illustrating the technique of frequency modulation multiplexing of a plurality of intelligence signals.
- the same optical assembly 924 is illustrated as in FIG. 20, leaving out signal generator 934 and switch 335. Further, the dispersive material 926 would not be needed.
- plate 930 there is provided to plate 930 a plurality of frequency modulated multiplexed signals in place of a radar type signal. Two frequency modulation signals are illustrated, and with respect to one of them, it would take this form.
- An IF source 941 would generate a first intermediate frequency signal, typically being small with respect to the frequency of the laser beam itself.
- frequency modulator 942 Its output would be fed to frequency modulator 942 which would then frequency modulate the applied IF frequency over a desired frequency deviation, typically depending upon the bandwidth of the intelligence signal applied to it, and it would be supplied as a first intelligence signal as shown.
- the output of frequency modulator 942 would be provided as one input to plate 930 of the light modulator 924, being applied across summing resistor 944.
- a second IF frequency would be generated by IF source 946 at a different frequency than that generated by IF source 941, and it would be applied to frequency modulator 948, which in turn would receive a second intelligence signal.
- frequency modulator 948 would provide a selected frequency deviation of the IF frequency applied to it, and its output would also be provided to light modulator 924 across summing resistor 944. The combined outputs of modulators 942 and 948 would then be transmitted by optical modulator 924.
- FIG. 23 shows a receiver for the transmitter shown in FIG. 22, the signal output 938 of optical modulator 924 would be received in the receiver by optical detector 982 which would provide an electrical output to mixer 984 to which is also applied the two IF frequencies generated in FIG. 22, one by a local oscillator 986 and the other by oscillator 988.
- mixer 984 provides an output, being the first IF frequency modulation and a second frequency modulation, these being applied separately to signal discriminators 990 and 992 to thus provide typical analog outputs of the two modulations effected by the system shown in FIG. 22.
- the output of signal discriminators 990 and 992 would provide discrete outputs representative of the modulated levels for digital signals, either being of the multi-level type or binary type.
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Abstract
Description
Claims (7)
Priority Applications (1)
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US08/480,448 US5812081A (en) | 1984-12-03 | 1995-06-07 | Time domain radio transmission system |
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US06/677,597 US4641317A (en) | 1984-12-03 | 1984-12-03 | Spread spectrum radio transmission system |
US06/870,177 US4743906A (en) | 1984-12-03 | 1986-06-03 | Time domain radio transmission system |
US07/010,440 US4813057A (en) | 1984-12-03 | 1987-02-03 | Time domain radio transmission system |
US19247588A | 1988-05-10 | 1988-05-10 | |
US36883189A | 1989-06-20 | 1989-06-20 | |
US07/846,597 US5363108A (en) | 1984-12-03 | 1992-03-05 | Time domain radio transmission system |
US33567694A | 1994-11-08 | 1994-11-08 | |
US08/480,448 US5812081A (en) | 1984-12-03 | 1995-06-07 | Time domain radio transmission system |
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Cited By (107)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5933079A (en) * | 1995-09-01 | 1999-08-03 | Remote Data Systems, Inc. | Signal discriminator and positioning system |
US6031862A (en) * | 1994-09-20 | 2000-02-29 | Time Domain Corporation | Ultrawide-band communication system and method |
WO2001043386A1 (en) * | 1999-12-09 | 2001-06-14 | Time Domain Corporation | Vector modulation system and method for wideband impulse radio communications |
US20010031023A1 (en) * | 1999-10-28 | 2001-10-18 | Kin Mun Lye | Method and apparatus for generating pulses from phase shift keying analog waveforms |
US20010036832A1 (en) * | 2000-04-14 | 2001-11-01 | Onscene, Inc. | Emergency command and control system |
US20020064245A1 (en) * | 2000-10-10 | 2002-05-30 | Mccorkle John W. | Ultra wide bandwidth noise cancellation mechanism and method |
US6417797B1 (en) | 1998-07-14 | 2002-07-09 | Cirrus Logic, Inc. | System for A multi-purpose portable imaging device and methods for using same |
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US20020131530A1 (en) * | 2001-03-13 | 2002-09-19 | Zhang Guo Ping | Method and apparatus to recover data from pulses |
US6456216B2 (en) | 1999-10-28 | 2002-09-24 | The National University Of Singapore | Method and apparatus for generating pulses from analog waveforms |
US6476744B1 (en) | 2001-04-13 | 2002-11-05 | The National University Of Singapore | Method and apparatus for generating pulses from analog waveforms |
US6486819B2 (en) * | 1999-10-28 | 2002-11-26 | The National University Of Singapore | Circuitry with resistive input impedance for generating pulses from analog waveforms |
US6498572B1 (en) | 2001-06-18 | 2002-12-24 | The National University Of Singapore | Method and apparatus for delta modulator and sigma delta modulator |
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US20020196865A1 (en) * | 2001-06-25 | 2002-12-26 | The National University Of Singapore | Cycle-by-cycle synchronous waveform shaping circuits based on time-domain superpostion and convolution |
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US20030086488A1 (en) * | 2001-11-05 | 2003-05-08 | Cellonics Incorporated Pte, Ltd. | Method and apparatus for generating pulse width modulated waveforms |
US20030095063A1 (en) * | 1986-06-03 | 2003-05-22 | Fullerton Larry W. | Time domain radio transmission system |
US20030095609A1 (en) * | 2001-06-13 | 2003-05-22 | Cowie Ivan A. | Method and apparatus for receiving a plurality of time spaced signals |
US20030103583A1 (en) * | 2001-12-04 | 2003-06-05 | National University Of Singapore | Method and apparatus for multi-level phase shift keying communications |
US20030112862A1 (en) * | 2001-12-13 | 2003-06-19 | The National University Of Singapore | Method and apparatus to generate ON-OFF keying signals suitable for communications |
US6603818B1 (en) | 1999-09-23 | 2003-08-05 | Lockheed Martin Energy Research Corporation | Pulse transmission transceiver architecture for low power communications |
US6606051B1 (en) | 1984-12-03 | 2003-08-12 | Time Domain Corporation | Pulse-responsive dipole antenna |
US6611223B2 (en) | 2001-10-02 | 2003-08-26 | National University Of Singapore | Method and apparatus for ultra wide-band communication system using multiple detectors |
US20030161411A1 (en) * | 1997-12-12 | 2003-08-28 | Mccorkle John W. | Ultra wide bandwidth communications method and system |
US6630897B2 (en) | 1999-10-28 | 2003-10-07 | Cellonics Incorporated Pte Ltd | Method and apparatus for signal detection in ultra wide-band communications |
US6633203B1 (en) | 2000-04-25 | 2003-10-14 | The National University Of Singapore | Method and apparatus for a gated oscillator in digital circuits |
US6650268B2 (en) * | 1999-10-28 | 2003-11-18 | The National University Of Singapore | Method and apparatus for a pulse decoding communication system using multiple receivers |
US6661298B2 (en) | 2000-04-25 | 2003-12-09 | The National University Of Singapore | Method and apparatus for a digital clock multiplication circuit |
US6707424B1 (en) | 1999-10-12 | 2004-03-16 | David M. Snyder | Integrated positioning system and method |
US6724269B2 (en) | 2002-06-21 | 2004-04-20 | Cellonics Incorporated Pte., Ltd. | PSK transmitter and correlator receiver for UWB communications system |
US20040149939A1 (en) * | 2001-06-04 | 2004-08-05 | Adam Matthew Dickson | Monitoring process and system |
US20040175173A1 (en) * | 2003-03-07 | 2004-09-09 | Sbc, Inc. | Method and system for delivering broadband services over an ultrawide band radio system integrated with a passive optical network |
US6799099B2 (en) | 2001-08-02 | 2004-09-28 | Rapistan Systems Advertising Corp. | Material handling systems with high frequency radio location devices |
US6882301B2 (en) | 1986-06-03 | 2005-04-19 | Time Domain Corporation | Time domain radio transmission system |
US20050089083A1 (en) * | 2002-11-15 | 2005-04-28 | Time Domain Corporation | System and method for fast acquisition of ultra wideband signals |
US20050102449A1 (en) * | 2001-09-26 | 2005-05-12 | Tempo Research Corporation | Multi-function data acquisition system and method |
US6906625B1 (en) | 2000-02-24 | 2005-06-14 | Time Domain Corporation | System and method for information assimilation and functionality control based on positioning information obtained by impulse radio techniques |
US20050213974A1 (en) * | 2004-03-26 | 2005-09-29 | Sbc Knowledge Ventures, L.P. | Passive optical network and ultrawide band adapter |
US20060028374A1 (en) * | 2004-08-06 | 2006-02-09 | Time Domain Corporation | System and method for ultra wideband subarray beam steering |
US20060028373A1 (en) * | 2004-08-06 | 2006-02-09 | Time Domain Corporation | System and method for active protection of a resource |
US20060087472A1 (en) * | 2004-10-22 | 2006-04-27 | Time Domain Corporation | System and method for triggering an explosive device |
US20060106546A1 (en) * | 2004-11-17 | 2006-05-18 | Time Domain Corporation | System and method for evaluating materials using ultra wideband signals |
US20070143078A1 (en) * | 2001-03-26 | 2007-06-21 | Martin Vetterli | Sampling method, reconstruction method, and device for sampling and/or reconstructing signals |
USRE39759E1 (en) | 1984-12-03 | 2007-08-07 | Time Domain Corporation | Time domain radio transmission system |
US20070254728A1 (en) * | 2006-04-26 | 2007-11-01 | Qualcomm Incorporated | Dynamic distribution of device functionality and resource management |
US20080101454A1 (en) * | 2004-01-23 | 2008-05-01 | Luff Robert A | Variable encoding and detection apparatus and methods |
US20080112512A1 (en) * | 2006-11-15 | 2008-05-15 | Qualcomm Incorporated | Transmitted reference signaling scheme |
US20080117939A1 (en) * | 2006-11-16 | 2008-05-22 | Qualcomm Incorporated | Multiple access techniques for a wireless communiation medium |
US20080117804A1 (en) * | 2006-11-16 | 2008-05-22 | Qualcomm Incorporated | Multiple access techniques for a wireless communication medium |
US20080116941A1 (en) * | 2006-11-16 | 2008-05-22 | Qualcomm Incorporated | Peak signal detector |
US20080144560A1 (en) * | 2006-12-15 | 2008-06-19 | Qualcomm Incorporated | Channel access scheme for ultra-wide band communication |
US20090017782A1 (en) * | 2007-07-12 | 2009-01-15 | Pavel Monat | Method for determining line-of-sight (los) distance between remote communications devices |
US7576672B2 (en) | 2007-07-18 | 2009-08-18 | Qualcomm Incorporated | Adaptive Dynamic Range Control |
US7576605B2 (en) | 2006-04-20 | 2009-08-18 | Qualcomm Incorporated | Low power output stage |
US7592878B2 (en) | 2007-04-05 | 2009-09-22 | Qualcomm Incorporated | Method and apparatus for generating oscillating signals |
US20090243699A1 (en) * | 2008-03-25 | 2009-10-01 | Qualcomm Incorporated | System and method of companding an input signal of an energy detecting receiver |
US20090323985A1 (en) * | 2008-06-30 | 2009-12-31 | Qualcomm Incorporated | System and method of controlling power consumption in response to volume control |
US7649925B2 (en) | 1999-06-14 | 2010-01-19 | Time Domain Corporation | Time transfer utilizing ultra wideband signals |
US7716001B2 (en) | 2006-11-15 | 2010-05-11 | Qualcomm Incorporated | Delay line calibration |
US20100157886A1 (en) * | 2007-10-26 | 2010-06-24 | Qualcomm Incorporated | Preamble capture and medium access control |
USRE41479E1 (en) | 1984-12-03 | 2010-08-10 | Time Domain Corporation | Time domain radio transmission system |
US7812667B2 (en) | 2008-03-10 | 2010-10-12 | Qualcomm Incorporated | System and method of enabling a signal processing device in a relatively fast manner to process a low duty cycle signal |
US20100277208A1 (en) * | 2002-10-17 | 2010-11-04 | Time Domain Corporation | Method and apparatus for generating rf waveforms having aggregate energy with desired spectral characteristics |
US7834482B2 (en) | 2007-04-23 | 2010-11-16 | Qualcomm Incorporated | Apparatus and method for generating fine timing from coarse timing source |
US20100290573A1 (en) * | 2009-05-13 | 2010-11-18 | Qualcomm Incorporated | Method and apparatus for clock drift compensation during acquisition in a wireless communication system |
US7855611B2 (en) | 2006-11-15 | 2010-12-21 | Qualcomm Incorporated | Delay line calibration |
US7868689B2 (en) | 2008-04-08 | 2011-01-11 | Qualcomm Incorporated | Low power slicer-based demodulator for PPM |
US7965805B2 (en) | 2007-09-21 | 2011-06-21 | Qualcomm Incorporated | Signal generator with signal tracking |
US7974580B2 (en) | 2007-08-28 | 2011-07-05 | Qualcomm Incorporated | Apparatus and method for modulating an amplitude, phase or both of a periodic signal on a per cycle basis |
US8005065B2 (en) | 2007-09-11 | 2011-08-23 | Qualcomm Incorporated | Keep-alive for wireless networks |
US20110231657A1 (en) * | 2009-03-16 | 2011-09-22 | Qualcomm Incorporated | Apparatus and method for employing codes for telecommunications |
US8059573B2 (en) | 2007-07-30 | 2011-11-15 | Qualcomm Incorporated | Method of pairing devices |
US8111797B2 (en) | 2007-05-08 | 2012-02-07 | Tdc Acquisition Holdings, Inc. | Enhanced system and method for detecting the leading edge of a waveform |
US8165080B2 (en) | 2008-08-22 | 2012-04-24 | Qualcomm Incorporated | Addressing schemes for wireless communication |
US8233572B2 (en) | 2007-09-25 | 2012-07-31 | Qualcomm Incorporated | Interference mitigation for impulse-based communication |
US8275373B2 (en) | 2007-09-28 | 2012-09-25 | Qualcomm Incorporated | Randomization of periodic channel scans |
US8275343B2 (en) | 2008-03-10 | 2012-09-25 | Qualcomm Incorporated | System and method of using residual voltage from a prior operation to establish a bias voltage for a subsequent operation |
US8289159B2 (en) | 2006-04-26 | 2012-10-16 | Qualcomm Incorporated | Wireless localization apparatus and method |
US8326246B2 (en) | 2007-07-10 | 2012-12-04 | Qualcomm Incorporated | Super regenerative (SR) apparatus having plurality of parallel SR amplifiers tuned to distinct frequencies |
US8375261B2 (en) | 2008-07-07 | 2013-02-12 | Qualcomm Incorporated | System and method of puncturing pulses in a receiver or transmitter |
US8385474B2 (en) | 2007-09-21 | 2013-02-26 | Qualcomm Incorporated | Signal generator with adjustable frequency |
US8406794B2 (en) | 2006-04-26 | 2013-03-26 | Qualcomm Incorporated | Methods and apparatuses of initiating communication in wireless networks |
US8446976B2 (en) | 2007-09-21 | 2013-05-21 | Qualcomm Incorporated | Signal generator with adjustable phase |
US8451710B2 (en) | 2006-04-26 | 2013-05-28 | Qualcomm Incorporated | Sub-packet pulse-based communications |
US8473013B2 (en) | 2008-04-23 | 2013-06-25 | Qualcomm Incorporated | Multi-level duty cycling |
US8483639B2 (en) | 2008-05-06 | 2013-07-09 | Qualcomm Incorporated | AGC for slicer-based low power demodulator |
US8538345B2 (en) | 2007-10-09 | 2013-09-17 | Qualcomm Incorporated | Apparatus including housing incorporating a radiating element of an antenna |
US8552903B2 (en) | 2006-04-18 | 2013-10-08 | Qualcomm Incorporated | Verified distance ranging |
US8553744B2 (en) | 2009-01-06 | 2013-10-08 | Qualcomm Incorporated | Pulse arbitration for network communications |
US8612693B2 (en) | 2009-03-19 | 2013-12-17 | Qualcomm Incorporated | Optimized transfer of packets in a resource constrained operating environment |
US8644396B2 (en) | 2006-04-18 | 2014-02-04 | Qualcomm Incorporated | Waveform encoding for wireless applications |
US8787440B2 (en) | 2008-07-25 | 2014-07-22 | Qualcomm Incorporated | Determination of receive data values |
US8811456B2 (en) | 2006-04-19 | 2014-08-19 | Qualcomm Incorporated | Apparatus and method of low latency multi-hop communication |
US8837724B2 (en) | 2007-03-27 | 2014-09-16 | Qualcomm Incorporated | Synchronization test for device authentication |
US8886125B2 (en) | 2006-04-14 | 2014-11-11 | Qualcomm Incorporated | Distance-based association |
US9124357B2 (en) | 2006-04-20 | 2015-09-01 | Qualcomm Incorporated | Media access control for ultra-wide band communication |
US9141961B2 (en) | 2007-06-20 | 2015-09-22 | Qualcomm Incorporated | Management of dynamic mobile coupons |
US9140772B1 (en) | 2012-01-18 | 2015-09-22 | Tdc Acquisition Holdings, Inc. | Distance measuring quality factor using signal characterization |
US9215581B2 (en) | 2006-04-14 | 2015-12-15 | Qualcomm Incorported | Distance-based presence management |
US9383436B2 (en) | 2012-01-18 | 2016-07-05 | Tdc Acquisition Holdings, Inc. | One way time of flight distance measurement |
US9483769B2 (en) | 2007-06-20 | 2016-11-01 | Qualcomm Incorporated | Dynamic electronic coupon for a mobile environment |
US9524502B2 (en) | 2007-06-20 | 2016-12-20 | Qualcomm Incorporated | Management of dynamic electronic coupons |
US10495731B2 (en) * | 2016-01-08 | 2019-12-03 | James Francis Harvey | Waveform peak detection and timing for radar applications |
US10542372B2 (en) | 2011-03-15 | 2020-01-21 | Qualcomm Incorporated | User identification within a physical merchant location through the use of a wireless network |
US10885543B1 (en) | 2006-12-29 | 2021-01-05 | The Nielsen Company (Us), Llc | Systems and methods to pre-scale media content to facilitate audience measurement |
US11652494B1 (en) * | 2021-12-17 | 2023-05-16 | Lawrence Livermore National Security, Llc | Discrete offset dithered waveform averaging for high-fidelity digitization of repetitive signals |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3641434A (en) * | 1968-10-10 | 1972-02-08 | Bendix Corp | Wide-band crystal-controlled transceiver with remote digital tuning |
US4070621A (en) * | 1976-07-23 | 1978-01-24 | The United States Of America As Represented By The Department Of Health, Education And Welfare | Antenna with electro-optical modulator |
US4291410A (en) * | 1979-10-24 | 1981-09-22 | Rockwell International Corporation | Multipath diversity spread spectrum receiver |
-
1995
- 1995-06-07 US US08/480,448 patent/US5812081A/en not_active Expired - Lifetime
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3641434A (en) * | 1968-10-10 | 1972-02-08 | Bendix Corp | Wide-band crystal-controlled transceiver with remote digital tuning |
US4070621A (en) * | 1976-07-23 | 1978-01-24 | The United States Of America As Represented By The Department Of Health, Education And Welfare | Antenna with electro-optical modulator |
US4291410A (en) * | 1979-10-24 | 1981-09-22 | Rockwell International Corporation | Multipath diversity spread spectrum receiver |
Cited By (161)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6606051B1 (en) | 1984-12-03 | 2003-08-12 | Time Domain Corporation | Pulse-responsive dipole antenna |
USRE39759E1 (en) | 1984-12-03 | 2007-08-07 | Time Domain Corporation | Time domain radio transmission system |
USRE41479E1 (en) | 1984-12-03 | 2010-08-10 | Time Domain Corporation | Time domain radio transmission system |
US6933882B2 (en) | 1986-06-03 | 2005-08-23 | Time Domain Corporation | Time domain radio transmission system |
US6882301B2 (en) | 1986-06-03 | 2005-04-19 | Time Domain Corporation | Time domain radio transmission system |
US20030095063A1 (en) * | 1986-06-03 | 2003-05-22 | Fullerton Larry W. | Time domain radio transmission system |
US6031862A (en) * | 1994-09-20 | 2000-02-29 | Time Domain Corporation | Ultrawide-band communication system and method |
US5933079A (en) * | 1995-09-01 | 1999-08-03 | Remote Data Systems, Inc. | Signal discriminator and positioning system |
US7280607B2 (en) * | 1997-12-12 | 2007-10-09 | Freescale Semiconductor, Inc. | Ultra wide bandwidth communications method and system |
US20030161411A1 (en) * | 1997-12-12 | 2003-08-28 | Mccorkle John W. | Ultra wide bandwidth communications method and system |
US6417797B1 (en) | 1998-07-14 | 2002-07-09 | Cirrus Logic, Inc. | System for A multi-purpose portable imaging device and methods for using same |
US7649925B2 (en) | 1999-06-14 | 2010-01-19 | Time Domain Corporation | Time transfer utilizing ultra wideband signals |
US6606350B2 (en) | 1999-09-23 | 2003-08-12 | Lockheed Martin Energy Research Corporation | Pulse transmission receiver with higher-order time derivative pulse generator |
US6603818B1 (en) | 1999-09-23 | 2003-08-05 | Lockheed Martin Energy Research Corporation | Pulse transmission transceiver architecture for low power communications |
US6625229B2 (en) | 1999-09-23 | 2003-09-23 | Lockheed Martin Energy Research Corporation | Pulse transmission transmitter including a higher order time derivate filter |
US6707424B1 (en) | 1999-10-12 | 2004-03-16 | David M. Snyder | Integrated positioning system and method |
US6486819B2 (en) * | 1999-10-28 | 2002-11-26 | The National University Of Singapore | Circuitry with resistive input impedance for generating pulses from analog waveforms |
US6456216B2 (en) | 1999-10-28 | 2002-09-24 | The National University Of Singapore | Method and apparatus for generating pulses from analog waveforms |
US6650268B2 (en) * | 1999-10-28 | 2003-11-18 | The National University Of Singapore | Method and apparatus for a pulse decoding communication system using multiple receivers |
US6630897B2 (en) | 1999-10-28 | 2003-10-07 | Cellonics Incorporated Pte Ltd | Method and apparatus for signal detection in ultra wide-band communications |
US20010031023A1 (en) * | 1999-10-28 | 2001-10-18 | Kin Mun Lye | Method and apparatus for generating pulses from phase shift keying analog waveforms |
US6498578B2 (en) | 1999-10-28 | 2002-12-24 | The National University Of Singapore | Method and apparatus for generating pulses using dynamic transfer function characteristics |
WO2001043386A1 (en) * | 1999-12-09 | 2001-06-14 | Time Domain Corporation | Vector modulation system and method for wideband impulse radio communications |
US6763057B1 (en) | 1999-12-09 | 2004-07-13 | Time Domain Corporation | Vector modulation system and method for wideband impulse radio communications |
US7170408B2 (en) | 2000-02-24 | 2007-01-30 | Time Domain Corporation | System and method for information assimilation and functionality control based on positioning information obtained by impulse radio means |
US6906625B1 (en) | 2000-02-24 | 2005-06-14 | Time Domain Corporation | System and method for information assimilation and functionality control based on positioning information obtained by impulse radio techniques |
US20050254354A1 (en) * | 2000-02-24 | 2005-11-17 | Time Domain Corporation | System and method for information assimilation and functionality control based on positioning information obtained by impulse radio means |
EP1269439A2 (en) * | 2000-03-29 | 2003-01-02 | Time Domain Corporation | System for fast lock and acquisition of ultra-wideband signals |
US7492811B2 (en) | 2000-03-29 | 2009-02-17 | Alereon, Inc. | Method and system for fast acquisition of ultra-wideband signals |
US20070286272A1 (en) * | 2000-03-29 | 2007-12-13 | Alereon, Inc. | Method and system for fast acquisition of ultra-wideband signals |
EP1269439A4 (en) * | 2000-03-29 | 2005-04-13 | Time Domain Corp | System for fast lock and acquisition of ultra-wideband signals |
US20010036832A1 (en) * | 2000-04-14 | 2001-11-01 | Onscene, Inc. | Emergency command and control system |
US6661298B2 (en) | 2000-04-25 | 2003-12-09 | The National University Of Singapore | Method and apparatus for a digital clock multiplication circuit |
US6633203B1 (en) | 2000-04-25 | 2003-10-14 | The National University Of Singapore | Method and apparatus for a gated oscillator in digital circuits |
US20020064245A1 (en) * | 2000-10-10 | 2002-05-30 | Mccorkle John W. | Ultra wide bandwidth noise cancellation mechanism and method |
US7177341B2 (en) | 2000-10-10 | 2007-02-13 | Freescale Semiconductor, Inc. | Ultra wide bandwidth noise cancellation mechanism and method |
US6437726B1 (en) * | 2000-11-30 | 2002-08-20 | Caterpillar Inc. | Method and apparatus for determining the location of underground objects during a digging operation |
US20020131530A1 (en) * | 2001-03-13 | 2002-09-19 | Zhang Guo Ping | Method and apparatus to recover data from pulses |
US6907090B2 (en) | 2001-03-13 | 2005-06-14 | The National University Of Singapore | Method and apparatus to recover data from pulses |
US20070143078A1 (en) * | 2001-03-26 | 2007-06-21 | Martin Vetterli | Sampling method, reconstruction method, and device for sampling and/or reconstructing signals |
US20070183535A1 (en) * | 2001-03-26 | 2007-08-09 | Irena Maravic | Sampling method for a spread spectrum communication system |
US8031820B2 (en) | 2001-03-26 | 2011-10-04 | Qualcomm Incorporated | Sampling method, reconstruction method, and device for sampling and/or reconstructing signals |
US8160194B2 (en) | 2001-03-26 | 2012-04-17 | Qualcomm Incorporated | Sampling method, reconstruction method, and device for sampling and/or reconstructing signals |
US7991095B2 (en) | 2001-03-26 | 2011-08-02 | Qualcomm Incorporated | Sampling method, reconstruction method, and device for sampling and/or reconstructing signals |
US8077757B2 (en) | 2001-03-26 | 2011-12-13 | Qualcomm Incorporated | Sampling method for a spread spectrum communication system |
US20100246729A1 (en) * | 2001-03-26 | 2010-09-30 | Qualcomm Incorporated | Sampling method, reconstruction method, and device for sampling and/or reconstructing signals |
US6476744B1 (en) | 2001-04-13 | 2002-11-05 | The National University Of Singapore | Method and apparatus for generating pulses from analog waveforms |
US20040149939A1 (en) * | 2001-06-04 | 2004-08-05 | Adam Matthew Dickson | Monitoring process and system |
US7522044B2 (en) * | 2001-06-04 | 2009-04-21 | Ceos Industrial Pty Ltd | Monitoring process and system |
US20030095609A1 (en) * | 2001-06-13 | 2003-05-22 | Cowie Ivan A. | Method and apparatus for receiving a plurality of time spaced signals |
US6717992B2 (en) * | 2001-06-13 | 2004-04-06 | Time Domain Corporation | Method and apparatus for receiving a plurality of time spaced signals |
US6498572B1 (en) | 2001-06-18 | 2002-12-24 | The National University Of Singapore | Method and apparatus for delta modulator and sigma delta modulator |
US20020196865A1 (en) * | 2001-06-25 | 2002-12-26 | The National University Of Singapore | Cycle-by-cycle synchronous waveform shaping circuits based on time-domain superpostion and convolution |
US6799099B2 (en) | 2001-08-02 | 2004-09-28 | Rapistan Systems Advertising Corp. | Material handling systems with high frequency radio location devices |
US20050102449A1 (en) * | 2001-09-26 | 2005-05-12 | Tempo Research Corporation | Multi-function data acquisition system and method |
US6611223B2 (en) | 2001-10-02 | 2003-08-26 | National University Of Singapore | Method and apparatus for ultra wide-band communication system using multiple detectors |
US7054360B2 (en) | 2001-11-05 | 2006-05-30 | Cellonics Incorporated Pte, Ltd. | Method and apparatus for generating pulse width modulated waveforms |
US20030086488A1 (en) * | 2001-11-05 | 2003-05-08 | Cellonics Incorporated Pte, Ltd. | Method and apparatus for generating pulse width modulated waveforms |
US20030103583A1 (en) * | 2001-12-04 | 2003-06-05 | National University Of Singapore | Method and apparatus for multi-level phase shift keying communications |
US20030112862A1 (en) * | 2001-12-13 | 2003-06-19 | The National University Of Singapore | Method and apparatus to generate ON-OFF keying signals suitable for communications |
US6724269B2 (en) | 2002-06-21 | 2004-04-20 | Cellonics Incorporated Pte., Ltd. | PSK transmitter and correlator receiver for UWB communications system |
US8228968B2 (en) | 2002-10-17 | 2012-07-24 | Alereon, Inc. | Method and apparatus for generating RF waveforms having aggregate energy with desired spectral characteristics |
US20100277208A1 (en) * | 2002-10-17 | 2010-11-04 | Time Domain Corporation | Method and apparatus for generating rf waveforms having aggregate energy with desired spectral characteristics |
US7436876B2 (en) | 2002-11-15 | 2008-10-14 | Time Domain Corporation | System and method for fast acquisition of ultra wideband signals |
US20050089083A1 (en) * | 2002-11-15 | 2005-04-28 | Time Domain Corporation | System and method for fast acquisition of ultra wideband signals |
US7962042B2 (en) | 2003-03-07 | 2011-06-14 | At&T Intellectual Property I, L.P. | Method and system for delivering broadband services over an ultrawide band radio system integrated with a passive optical network |
US20040175173A1 (en) * | 2003-03-07 | 2004-09-09 | Sbc, Inc. | Method and system for delivering broadband services over an ultrawide band radio system integrated with a passive optical network |
US20080101454A1 (en) * | 2004-01-23 | 2008-05-01 | Luff Robert A | Variable encoding and detection apparatus and methods |
US9210416B2 (en) | 2004-01-23 | 2015-12-08 | The Nielsen Company (Us), Llc | Variable encoding and detection apparatus and methods |
US8761301B2 (en) | 2004-01-23 | 2014-06-24 | The Nielsen Company (Us), Llc | Variable encoding and detection apparatus and methods |
US8406341B2 (en) * | 2004-01-23 | 2013-03-26 | The Nielsen Company (Us), Llc | Variable encoding and detection apparatus and methods |
US7672338B2 (en) | 2004-03-26 | 2010-03-02 | At&T Intellectual Property I, L.P. | Passive optical network and ultrawide band adapter |
US7366203B2 (en) * | 2004-03-26 | 2008-04-29 | Sbc Knowledge Ventures, L.P. | Passive optical network and ultrawide band adapter |
US8107488B2 (en) | 2004-03-26 | 2012-01-31 | At&T Intellectual Property, L.P. | Passive optical network and ultrawide band adapter |
US20080152344A1 (en) * | 2004-03-26 | 2008-06-26 | Sbc Knowledge Ventures, L.P. | Passive optical network and ultrawide band adapter |
US20050213974A1 (en) * | 2004-03-26 | 2005-09-29 | Sbc Knowledge Ventures, L.P. | Passive optical network and ultrawide band adapter |
US20100092170A1 (en) * | 2004-03-26 | 2010-04-15 | At&T Intellectual Property I, L.P. | Passive Optical Network and Ultrawide Band Adapter |
US20060028374A1 (en) * | 2004-08-06 | 2006-02-09 | Time Domain Corporation | System and method for ultra wideband subarray beam steering |
US20060028373A1 (en) * | 2004-08-06 | 2006-02-09 | Time Domain Corporation | System and method for active protection of a resource |
US7046187B2 (en) | 2004-08-06 | 2006-05-16 | Time Domain Corporation | System and method for active protection of a resource |
US20060087472A1 (en) * | 2004-10-22 | 2006-04-27 | Time Domain Corporation | System and method for triggering an explosive device |
US7417582B2 (en) | 2004-10-22 | 2008-08-26 | Time Domain Corporation | System and method for triggering an explosive device |
US20060106546A1 (en) * | 2004-11-17 | 2006-05-18 | Time Domain Corporation | System and method for evaluating materials using ultra wideband signals |
US9215581B2 (en) | 2006-04-14 | 2015-12-15 | Qualcomm Incorported | Distance-based presence management |
US8886125B2 (en) | 2006-04-14 | 2014-11-11 | Qualcomm Incorporated | Distance-based association |
US9510383B2 (en) | 2006-04-14 | 2016-11-29 | Qualcomm Incorporated | System and method of associating devices based on actuation of input devices and signal strength |
US9591470B2 (en) | 2006-04-14 | 2017-03-07 | Qualcomm Incorporated | System and method for enabling operations based on distance to and motion of remote device |
US8552903B2 (en) | 2006-04-18 | 2013-10-08 | Qualcomm Incorporated | Verified distance ranging |
US8654868B2 (en) | 2006-04-18 | 2014-02-18 | Qualcomm Incorporated | Offloaded processing for wireless applications |
US8644396B2 (en) | 2006-04-18 | 2014-02-04 | Qualcomm Incorporated | Waveform encoding for wireless applications |
US8811456B2 (en) | 2006-04-19 | 2014-08-19 | Qualcomm Incorporated | Apparatus and method of low latency multi-hop communication |
US7576605B2 (en) | 2006-04-20 | 2009-08-18 | Qualcomm Incorporated | Low power output stage |
US9124357B2 (en) | 2006-04-20 | 2015-09-01 | Qualcomm Incorporated | Media access control for ultra-wide band communication |
US8553745B2 (en) | 2006-04-26 | 2013-10-08 | Qualcomm Incorporated | Inter-pulse duty cycling |
US8600373B2 (en) | 2006-04-26 | 2013-12-03 | Qualcomm Incorporated | Dynamic distribution of device functionality and resource management |
US8406794B2 (en) | 2006-04-26 | 2013-03-26 | Qualcomm Incorporated | Methods and apparatuses of initiating communication in wireless networks |
US8451710B2 (en) | 2006-04-26 | 2013-05-28 | Qualcomm Incorporated | Sub-packet pulse-based communications |
US8289159B2 (en) | 2006-04-26 | 2012-10-16 | Qualcomm Incorporated | Wireless localization apparatus and method |
US8527016B2 (en) | 2006-04-26 | 2013-09-03 | Qualcomm Incorporated | Wireless device communication with multiple peripherals |
US20070254728A1 (en) * | 2006-04-26 | 2007-11-01 | Qualcomm Incorporated | Dynamic distribution of device functionality and resource management |
US7716001B2 (en) | 2006-11-15 | 2010-05-11 | Qualcomm Incorporated | Delay line calibration |
US8698572B2 (en) | 2006-11-15 | 2014-04-15 | Qualcomm Incorporated | Delay line calibration |
US20080112512A1 (en) * | 2006-11-15 | 2008-05-15 | Qualcomm Incorporated | Transmitted reference signaling scheme |
US7855611B2 (en) | 2006-11-15 | 2010-12-21 | Qualcomm Incorporated | Delay line calibration |
US20080116941A1 (en) * | 2006-11-16 | 2008-05-22 | Qualcomm Incorporated | Peak signal detector |
US8014425B2 (en) | 2006-11-16 | 2011-09-06 | Qualcomm Incorporated | Multiple access techniques for a wireless communiation medium |
US7889753B2 (en) | 2006-11-16 | 2011-02-15 | Qualcomm Incorporated | Multiple access techniques for a wireless communication medium |
US20080117939A1 (en) * | 2006-11-16 | 2008-05-22 | Qualcomm Incorporated | Multiple access techniques for a wireless communiation medium |
US20080117804A1 (en) * | 2006-11-16 | 2008-05-22 | Qualcomm Incorporated | Multiple access techniques for a wireless communication medium |
US8363583B2 (en) | 2006-12-15 | 2013-01-29 | Qualcomm Incorporated | Channel access scheme for ultra-wide band communication |
US20080144560A1 (en) * | 2006-12-15 | 2008-06-19 | Qualcomm Incorporated | Channel access scheme for ultra-wide band communication |
US10885543B1 (en) | 2006-12-29 | 2021-01-05 | The Nielsen Company (Us), Llc | Systems and methods to pre-scale media content to facilitate audience measurement |
US11568439B2 (en) | 2006-12-29 | 2023-01-31 | The Nielsen Company (Us), Llc | Systems and methods to pre-scale media content to facilitate audience measurement |
US11928707B2 (en) | 2006-12-29 | 2024-03-12 | The Nielsen Company (Us), Llc | Systems and methods to pre-scale media content to facilitate audience measurement |
US8837724B2 (en) | 2007-03-27 | 2014-09-16 | Qualcomm Incorporated | Synchronization test for device authentication |
US7902936B2 (en) | 2007-04-05 | 2011-03-08 | Qualcomm Incorporated | Method and apparatus for generating oscillating signals |
US7592878B2 (en) | 2007-04-05 | 2009-09-22 | Qualcomm Incorporated | Method and apparatus for generating oscillating signals |
US7834482B2 (en) | 2007-04-23 | 2010-11-16 | Qualcomm Incorporated | Apparatus and method for generating fine timing from coarse timing source |
US8111797B2 (en) | 2007-05-08 | 2012-02-07 | Tdc Acquisition Holdings, Inc. | Enhanced system and method for detecting the leading edge of a waveform |
US9483769B2 (en) | 2007-06-20 | 2016-11-01 | Qualcomm Incorporated | Dynamic electronic coupon for a mobile environment |
US9141961B2 (en) | 2007-06-20 | 2015-09-22 | Qualcomm Incorporated | Management of dynamic mobile coupons |
US9524502B2 (en) | 2007-06-20 | 2016-12-20 | Qualcomm Incorporated | Management of dynamic electronic coupons |
US9747613B2 (en) | 2007-06-20 | 2017-08-29 | Qualcomm Incorporated | Dynamic electronic coupon for a mobile environment |
US8326246B2 (en) | 2007-07-10 | 2012-12-04 | Qualcomm Incorporated | Super regenerative (SR) apparatus having plurality of parallel SR amplifiers tuned to distinct frequencies |
US20090017782A1 (en) * | 2007-07-12 | 2009-01-15 | Pavel Monat | Method for determining line-of-sight (los) distance between remote communications devices |
US8103228B2 (en) | 2007-07-12 | 2012-01-24 | Qualcomm Incorporated | Method for determining line-of-sight (LOS) distance between remote communications devices |
US7576672B2 (en) | 2007-07-18 | 2009-08-18 | Qualcomm Incorporated | Adaptive Dynamic Range Control |
US8059573B2 (en) | 2007-07-30 | 2011-11-15 | Qualcomm Incorporated | Method of pairing devices |
US7974580B2 (en) | 2007-08-28 | 2011-07-05 | Qualcomm Incorporated | Apparatus and method for modulating an amplitude, phase or both of a periodic signal on a per cycle basis |
US8406693B2 (en) | 2007-08-28 | 2013-03-26 | Qualcomm Incorporated | Apparatus and method for modulating an amplitude, phase or both of a periodic signal on a per cycle basis |
US8005065B2 (en) | 2007-09-11 | 2011-08-23 | Qualcomm Incorporated | Keep-alive for wireless networks |
US8385474B2 (en) | 2007-09-21 | 2013-02-26 | Qualcomm Incorporated | Signal generator with adjustable frequency |
US8446976B2 (en) | 2007-09-21 | 2013-05-21 | Qualcomm Incorporated | Signal generator with adjustable phase |
US7965805B2 (en) | 2007-09-21 | 2011-06-21 | Qualcomm Incorporated | Signal generator with signal tracking |
US8233572B2 (en) | 2007-09-25 | 2012-07-31 | Qualcomm Incorporated | Interference mitigation for impulse-based communication |
US8275373B2 (en) | 2007-09-28 | 2012-09-25 | Qualcomm Incorporated | Randomization of periodic channel scans |
US8538345B2 (en) | 2007-10-09 | 2013-09-17 | Qualcomm Incorporated | Apparatus including housing incorporating a radiating element of an antenna |
US20100157886A1 (en) * | 2007-10-26 | 2010-06-24 | Qualcomm Incorporated | Preamble capture and medium access control |
US9083448B2 (en) | 2007-10-26 | 2015-07-14 | Qualcomm Incorporated | Preamble capture and medium access control |
US8275343B2 (en) | 2008-03-10 | 2012-09-25 | Qualcomm Incorporated | System and method of using residual voltage from a prior operation to establish a bias voltage for a subsequent operation |
US7812667B2 (en) | 2008-03-10 | 2010-10-12 | Qualcomm Incorporated | System and method of enabling a signal processing device in a relatively fast manner to process a low duty cycle signal |
US8254595B2 (en) | 2008-03-25 | 2012-08-28 | Qualcomm Incorporated | System and method of companding an input signal of an energy detecting receiver |
US20090243699A1 (en) * | 2008-03-25 | 2009-10-01 | Qualcomm Incorporated | System and method of companding an input signal of an energy detecting receiver |
US7868689B2 (en) | 2008-04-08 | 2011-01-11 | Qualcomm Incorporated | Low power slicer-based demodulator for PPM |
US8473013B2 (en) | 2008-04-23 | 2013-06-25 | Qualcomm Incorporated | Multi-level duty cycling |
US8483639B2 (en) | 2008-05-06 | 2013-07-09 | Qualcomm Incorporated | AGC for slicer-based low power demodulator |
US20090323985A1 (en) * | 2008-06-30 | 2009-12-31 | Qualcomm Incorporated | System and method of controlling power consumption in response to volume control |
US8375261B2 (en) | 2008-07-07 | 2013-02-12 | Qualcomm Incorporated | System and method of puncturing pulses in a receiver or transmitter |
US8787440B2 (en) | 2008-07-25 | 2014-07-22 | Qualcomm Incorporated | Determination of receive data values |
US8848636B2 (en) | 2008-08-22 | 2014-09-30 | Qualcomm Incorporated | Addressing schemes for wireless communication |
US8165080B2 (en) | 2008-08-22 | 2012-04-24 | Qualcomm Incorporated | Addressing schemes for wireless communication |
US8553744B2 (en) | 2009-01-06 | 2013-10-08 | Qualcomm Incorporated | Pulse arbitration for network communications |
US20110231657A1 (en) * | 2009-03-16 | 2011-09-22 | Qualcomm Incorporated | Apparatus and method for employing codes for telecommunications |
US8612693B2 (en) | 2009-03-19 | 2013-12-17 | Qualcomm Incorporated | Optimized transfer of packets in a resource constrained operating environment |
US20100290573A1 (en) * | 2009-05-13 | 2010-11-18 | Qualcomm Incorporated | Method and apparatus for clock drift compensation during acquisition in a wireless communication system |
US8514911B2 (en) | 2009-05-13 | 2013-08-20 | Qualcomm Incorporated | Method and apparatus for clock drift compensation during acquisition in a wireless communication system |
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US9140772B1 (en) | 2012-01-18 | 2015-09-22 | Tdc Acquisition Holdings, Inc. | Distance measuring quality factor using signal characterization |
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US11652494B1 (en) * | 2021-12-17 | 2023-05-16 | Lawrence Livermore National Security, Llc | Discrete offset dithered waveform averaging for high-fidelity digitization of repetitive signals |
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